Chen Wei, Fan Ruiqing, Wang Ping, Dong Yuwei, Yang Yulin
MIIT Key Laboratory of Critical Materials Technology for, New Energy Conversion and Storage, School of Chemistry and Chemical Engineering, Harbin Institute of Technology, Harbin, 150001, P. R. of China.
Chem Asian J. 2018 Jun 20. doi: 10.1002/asia.201800754.
The chemistry of metal-organic frameworks has been progressing fast with its exciting potential in multifunctional applications. A series of three-dimensional lanthanide-based metal-organic frameworks, {[Ln(HTPO)(NO )(H O)]⋅x(CH CN)⋅y(H O)} (Ln=Eu (1), Tb (2), Gd (3), Sm (4), Dy (5), Nd (6)), {[Eu(TPO)(HCOO) ]⋅(H O) } (7), {[Eu(TPO)(DMF)]⋅(solv) } (8; DMF= N,N-dimethylformamide), and {[Eu(TPO)(DMA)]⋅(solv) } (9; DMA=dimethylacetamide) were synthesized with semirigid C -symmetric ligand tris(4-carboxylphenyl)phosphine oxide (H TPO). In these frameworks, the H TPO ligand exists in a totally different configuration. Framework 1 exhibits good breathing properties for absorbing more guest molecules through a solvent-induced single-crystal-to-single-crystal (SC-SC) transformation involving a configuration transformation of the organic linker in the framework. The ytterbium ion was doped into 1 to improve the luminescent performance (lifetime and quantum yield) of the red europium emission. Among a series of Eu Yb TPO samples, Eu Yb TPO showed enhanced luminescence intensity (≈5.1 times that of the pure europium system), and the lifetime increased from 1073.08 to 1236.57 μs. Moreover, the porosity of these frameworks allows them to efficiently adsorb dye molecules with high selectivity and efficiency.
金属有机框架材料的化学性质发展迅速,在多功能应用中具有令人兴奋的潜力。一系列基于镧系元素的三维金属有机框架材料,{[Ln(HTPO)(NO)(H₂O)]⋅x(CH₃CN)⋅y(H₂O)}(Ln = Eu (1)、Tb (2)、Gd (3)、Sm (4)、Dy (5)、Nd (6))、{[Eu(TPO)(HCOO)₂]⋅(H₂O)₂} (7)、{[Eu(TPO)(DMF)]⋅(solv)} (8;DMF = N,N - 二甲基甲酰胺) 和 {[Eu(TPO)(DMA)]⋅(solv)} (9;DMA = 二甲基乙酰胺),是用半刚性C₃ - 对称配体三(4 - 羧基苯基)氧化膦 (H₃TPO) 合成的。在这些框架材料中,H₃TPO配体以完全不同的构型存在。框架材料1表现出良好的呼吸性质,可通过涉及框架中有机连接体构型转变的溶剂诱导单晶到单晶 (SC - SC) 转变吸收更多客体分子。将镱离子掺杂到1中以改善红色铕发射的发光性能(寿命和量子产率)。在一系列Eu₁₋ₓYbₓTPO样品中,Eu₀.₉Yb₀.₁TPO的发光强度增强(约为纯铕体系的5.1倍),寿命从1073.08 μs增加到1236.57 μs。此外,这些框架材料的孔隙率使它们能够高效且高选择性地吸附染料分子。